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Holt Geometry 6-2 Properties of Parallelograms Warm Up Find the value of each variable. 1. x2. y3. z 218 4.

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Presentation on theme: "Holt Geometry 6-2 Properties of Parallelograms Warm Up Find the value of each variable. 1. x2. y3. z 218 4."— Presentation transcript:

1 Holt Geometry 6-2 Properties of Parallelograms Warm Up Find the value of each variable. 1. x2. y3. z 218 4

2 Holt Geometry 6-2 Properties of Parallelograms Prove and apply properties of parallelograms. Use properties of parallelograms to solve problems. Objectives

3 Holt Geometry 6-2 Properties of Parallelograms parallelogram Vocabulary

4 Holt Geometry 6-2 Properties of Parallelograms Any polygon with four sides is a quadrilateral. However, some quadrilaterals have special properties. These special quadrilaterals are given their own names.

5 Holt Geometry 6-2 Properties of Parallelograms Opposite sides of a quadrilateral do not share a vertex. Opposite angles do not share a side. Helpful Hint

6 Holt Geometry 6-2 Properties of Parallelograms A quadrilateral with two pairs of parallel sides is a parallelogram. To write the name of a parallelogram, you use the symbol.

7 Holt Geometry 6-2 Properties of Parallelograms

8 Holt Geometry 6-2 Properties of Parallelograms

9 Holt Geometry 6-2 Properties of Parallelograms Example 1A: Properties of Parallelograms Def. of  segs. Substitute 74 for DE. In CDEF, DE = 74 mm, DG = 31 mm, and mFCD = 42°. Find CF. CF = DE CF = 74 mm  opp. sides 

10 Holt Geometry 6-2 Properties of Parallelograms Substitute 42 for mFCD. Example 1B: Properties of Parallelograms Subtract 42 from both sides. mEFC + mFCD = 180° mEFC + 42 = 180 mEFC = 138° In CDEF, DE = 74 mm, DG = 31 mm, and mFCD = 42°. Find mEFC.  cons. s supp.

11 Holt Geometry 6-2 Properties of Parallelograms Example 1C: Properties of Parallelograms Substitute 31 for DG. Simplify. In CDEF, DE = 74 mm, DG = 31 mm, and mFCD = 42°. Find DF. DF = 2DG DF = 2(31) DF = 62  diags. bisect each other.

12 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 1a In KLMN, LM = 28 in., LN = 26 in., and mLKN = 74°. Find KN. Def. of  segs. Substitute 28 for DE. LM = KN LM = 28 in.  opp. sides 

13 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 1b Def. of angles. In KLMN, LM = 28 in., LN = 26 in., and mLKN = 74°. Find mNML. Def. of  s. Substitute 74° for mLKN. NML  LKN mNML = mLKN mNML = 74°  opp. s 

14 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 1c In KLMN, LM = 28 in., LN = 26 in., and mLKN = 74°. Find LO. Substitute 26 for LN. Simplify. LN = 2LO 26 = 2LO LO = 13 in.  diags. bisect each other.

15 Holt Geometry 6-2 Properties of Parallelograms Example 2A: Using Properties of Parallelograms to Find Measures WXYZ is a parallelogram. Find YZ. Def. of  segs. Substitute the given values. Subtract 6a from both sides and add 4 to both sides. Divide both sides by 2. YZ = XW 8a – 4 = 6a + 10 2a = 14 a = 7 YZ = 8a – 4 = 8(7) – 4 = 52  opp. s 

16 Holt Geometry 6-2 Properties of Parallelograms Example 2B: Using Properties of Parallelograms to Find Measures WXYZ is a parallelogram. Find mZ. Divide by 27. Add 9 to both sides. Combine like terms. Substitute the given values. mZ + mW = 180° (9b + 2) + (18b – 11) = 180 27b – 9 = 180 27b = 189 b = 7 mZ = (9b + 2)° = [9(7) + 2]° = 65°  cons. s supp.

17 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 2a EFGH is a parallelogram. Find JG. Substitute. Simplify. EJ = JG 3w = w + 8 2w = 8 w = 4Divide both sides by 2. JG = w + 8 = 4 + 8 = 12 Def. of  segs.  diags. bisect each other.

18 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 2b EFGH is a parallelogram. Find FH. Substitute. Simplify. FJ = JH 4z – 9 = 2z 2z = 9 z = 4.5Divide both sides by 2. Def. of  segs. FH = (4z – 9) + (2z) = 4(4.5) – 9 + 2(4.5) = 18  diags. bisect each other.

19 Holt Geometry 6-2 Properties of Parallelograms When you are drawing a figure in the coordinate plane, the name ABCD gives the order of the vertices. Remember!

20 Holt Geometry 6-2 Properties of Parallelograms Example 3: Parallelograms in the Coordinate Plane Three vertices of JKLM are J(3, –8), K(–2, 2), and L(2, 6). Find the coordinates of vertex M. Step 1 Graph the given points. J K L Since JKLM is a parallelogram, both pairs of opposite sides must be parallel.

21 Holt Geometry 6-2 Properties of Parallelograms Example 3 Continued Step 3 Start at J and count the same number of units. A rise of 4 from –8 is –4. A run of 4 from 3 is 7. Label (7, –4) as vertex M. Step 2 Find the slope of by counting the units from K to L. The rise from 2 to 6 is 4. The run of –2 to 2 is 4. J K L M

22 Holt Geometry 6-2 Properties of Parallelograms The coordinates of vertex M are (7, –4). Example 3 Continued Step 4 Use the slope formula to verify that J K L M

23 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 3 Three vertices of PQRS are P(–3, –2), Q(–1, 4), and S(5, 0). Find the coordinates of vertex R. Step 1 Graph the given points. Since PQRS is a parallelogram, both pairs of opposite sides must be parallel. P Q S

24 Holt Geometry 6-2 Properties of Parallelograms Step 3 Start at S and count the same number of units. A rise of 6 from 0 is 6. A run of 2 from 5 is 7. Label (7, 6) as vertex R. Check It Out! Example 3 Continued P Q S R Step 2 Find the slope of by counting the units from P to Q. The rise from –2 to 4 is 6. The run of –3 to –1 is 2.

25 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 3 Continued The coordinates of vertex R are (7, 6). Step 4 Use the slope formula to verify that P Q S R

26 Holt Geometry 6-2 Properties of Parallelograms Example 4A: Using Properties of Parallelograms in a Proof Write a two-column proof. Given: ABCD is a parallelogram. Prove: ∆AEB  ∆CED

27 Holt Geometry 6-2 Properties of Parallelograms Example 4A Continued Proof: StatementsReasons 1. ABCD is a parallelogram1. Given 4. SSS Steps 2, 3 2.  opp. sides  3.  diags. bisect each other

28 Holt Geometry 6-2 Properties of Parallelograms Example 4B: Using Properties of Parallelograms in a Proof Write a two-column proof. Given: GHJN and JKLM are parallelograms. H and M are collinear. N and K are collinear. Prove: H M

29 Holt Geometry 6-2 Properties of Parallelograms Example 4B Continued Proof: StatementsReasons 1. GHJN and JKLM are parallelograms. 1. Given 2.  cons. s supp. 2. H and HJN are supp. M and MJK are supp. 3. Vert. s Thm. 3. HJN  MJK 4. H  M4.  Supps. Thm.

30 Holt Geometry 6-2 Properties of Parallelograms Check It Out! Example 4 Write a two-column proof. Given: GHJN and JKLM are parallelograms. H and M are collinear. N and K are collinear. Prove: N  K

31 Holt Geometry 6-2 Properties of Parallelograms Proof: StatementsReasons 1. GHJN and JKLM are parallelograms. 1. Given 2. N and HJN are supp. K and MJK are supp. Check It Out! Example 4 Continued 2.  cons. s supp. 3. Vert. s Thm. 4.  Supps. Thm.4. N  K 3. HJN  MJK


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